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Updated: Aug 15, 2026

Preparation and Characterization of Individual and Multi-drug Loaded Physically Entrapped Polymeric Micelles
Published on: August 28, 2015
Bioadhesive drug delivery system using glyceryl monooleate for the intravesical administration of paclitaxel
Seung-Ju Lee1, Sae Woong Kim, Hesson Chung
1Department of Urology, College of Medicine, Catholic University, Seoul, Korea.
Background:
Many reports have shown that the efficacy of intravesical therapy for bladder cancer is in part limited by the poor penetration of drugs into the urothelium. The present study evaluated the effect of glyceryl monooleate (GMO) on the absorption of intravesically administered paclitaxel in a rabbit model of bladder cancer.
Methods:
Urine, plasma, and tissue pharmacokinetics were determined in rabbits treated for 120 min with paclitaxel (500 microg/20 ml) by intravesical instillation. Two formulations of GMO/paclitaxel were evaluated using different proportions of water, 15 and 30%, and Taxol was used as a control. Animals were observed for clinical signs of toxicity and necropsy was performed.
Results:
120 min after instillation, the bladder was emptied and excised. In the urine, paclitaxel concentration was decreased by 39.6 and 41.2% in the two experimental groups and by 25.2% in the control group. The paclitaxel concentrations in the urothelium were 53 and 56% of the urine concentration in both experimental groups, but 11% in the control group. The concentration then declined exponentially in the underlying capillary-perfused tissues, reaching equilibrium at a depth of 1,400-1,700 microm. The plasma concentrations were extremely low compared with concentrations in urine and bladder tissues and were not associated with clinical toxicity.
Conclusions:
We conclude that GMO has a significantly increased bioadhesiveness to bladder mucosa. Therefore, intravesical administration of GMO/paclitaxel/water provides a significant advantage for drugs targeting the bladder tissue, and paclitaxel represents a viable option for intravesical bladder cancer therapy.
Insights
Glyceryl monooleate (GMO) enhances intravesical paclitaxel absorption in bladder cancer therapy. This formulation improves drug penetration into urothelial tissues, offering a promising treatment strategy.
Area of Science:
- Pharmacology
- Oncology
- Biomaterials
Background:
- Intravesical therapy for bladder cancer shows limited efficacy due to poor drug penetration into the urothelium.
- Glyceryl monooleate (GMO) was investigated to improve drug absorption for bladder cancer treatment.
Purpose of the Study:
- To evaluate the effect of glyceryl monooleate (GMO) on the absorption of intravesically administered paclitaxel.
- To assess the safety and efficacy of GMO/paclitaxel formulations in a rabbit bladder cancer model.
Main Methods:
- Rabbits received intravesical paclitaxel (500 microg/20 ml) for 120 min.
- Two GMO/paclitaxel formulations with varying water content (15% and 30%) were tested against a Taxol control.
- Pharmacokinetics in urine, plasma, and bladder tissue were analyzed; toxicity was monitored.
Main Results:
- GMO formulations significantly increased paclitaxel concentration in the urothelium (53-56% of urine concentration) compared to control (11%).
- Paclitaxel concentrations declined in underlying tissues, reaching equilibrium at 1,400-1,700 microm.
- Extremely low plasma concentrations and no clinical toxicity were observed.
Conclusions:
- GMO demonstrates significantly increased bioadhesiveness to bladder mucosa.
- Intravesical GMO/paclitaxel/water offers advantages for bladder tissue targeting in cancer therapy.
- Paclitaxel is a viable option for intravesical bladder cancer treatment when formulated with GMO.
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